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Plasmonic analog of electromagnetically induced transparency in nanostructure graphene

  • Xi Shi
  • , Dezhuan Han
  • , Yunyun Dai
  • , Zongfu Yu
  • , Yong Sun
  • , Hong Chen
  • , Xiaohan Liu
  • , Jian Zi
  • Key Laboratory of Surface Physics
  • Chongqing University
  • Department of Civil and Environmental Engineering, University of Wisconsin-Madison
  • Tongji University

Research output: Contribution to journalArticlepeer-review

Abstract

Graphene has shown intriguing optical properties as a new class of plasmonic material in the terahertz regime. In particular, plasmonic modes in graphene nanostructures can be confined to a spatial size that is hundreds of times smaller than their corresponding wavelengths in vacuum. Here, we show numerically that by designing graphene nanostructures in such deep-subwavelength scales, one can obtain plasmonic modes with the desired radiative properties such as radiative and dark modes. By placing the radiative and dark modes in the vicinity of each other, we further demonstrate electromagnetically induced transparency (EIT), analogous to the atomic EIT. At the transparent window, there exist very large group delays, one order of magnitude larger than those offered by metal structures. The EIT spectrum can be further tuned electrically by applying a gate voltage. Our results suggest that the demonstrated EIT based on graphene plasmonics may offer new possibilities for applications in photonics.

Original languageEnglish
Pages (from-to)28438-28443
Number of pages6
JournalOptics Express
Volume21
Issue number23
DOIs
Publication statusPublished - 18 Nov 2013
Externally publishedYes

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